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| | | C0G (NP0) Dielectric General Specifications | | |
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| | | COG (NP0) is the most popular formulation of the "temperature-compensating," EIA Class I ceramic materials. Modern COG (NPO) formulations contain neodymium, samarium and other rare earth oxides. COG (NPO) ceramics offer one of the most stable industrial capacitor dielectrics available. Capacitance change with temperature is O ±3Oppm/°C which is less than ±O.3% A C from -55°C to +125°C. Capacitance drift or hysteresis for COG (NPO) ceramics is negligible at less than ±O.O5% versus up to ±2% for films. Typical capacitance change with life is less than ±O.1% for COG (NPO), one-fifth that shown by most other dielectrics. COG (NPO) formulations show no aging characteristics. | | |
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| | | PART NUMBER (see page 2 for complete part number explanation) | | |
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| | | 2 | | |
| | | 0805 | | A | | 101 | | J | | A | | T | | | A | | |
| | | 5 | | |
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| | | I Capacitance Code (In pF) 2 Sig. Digits + Number of Zeros | | |
| | | Size (L" x W") | | Dielectric C0G (NP0) = A | | | Capacitance Tolerance : ±.10 pF (<10pF) : ±.25 pF (<10pF) : ±.50 pF (<10pF) : ±1% (a 10 pF) : ±2% (a 10 pF) ±5% ±10% | | Failure Rate A = Not Applicable | | Terminations T = Plated Ni and Sn 7 = Gold Plated | | Packaging 2 = 7" Reel 4 = 13" Reel 7 = Bulk Cass. 9 = Bulk | | Special Code A = Std. Product | | |
| | | Voltage 6.3V = 6 10V = Z 16V = Y 25V = 3 50V = 5 100V = 1 200V = 2 500V = 7 | | |
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| | | B C D F G J K | | |
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| | | Contact _ . . Factory For gjg* 1 = Pd/Ag Term ForMultiples | | |
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| | | NOTE: Contact factory for availability of Termination and Tolerance Options for Specific Part Numbers. Contact factory for non-specified capacitance values. | | |
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| | | Insulation Resistance vs Temperature | | |
| | | Temperature Coefficient | | A Capacitance vs. Frequency | | |
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| | | CO -"D CO Ll_ È -£Z O | | |
| | | | | | | | | | | | | | | | | | | | | MIMI | | | | | | | | | Typical Capacitance Change 1 Envelope: 0 ± 30 ppm/°C | ■ | | | | | | | | | | | | | | | | | | | | | | | _ | | | | _ | | | | | | | | | | | | | | | — | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | | |
| | | +2+1 - 0 -1 - -2- | | |
| | | CD £Z TO Co Q. Co O | | |
| | | o TO CO Q. CO O | | |
| | | 1,000 = | | |
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| | | +0.50- | | 0 o £Z B to "tß 0 Œ. | | |
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| | | 100 | | |
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| | | < -0.5- | |
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| | | g Z3 tß | | |
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| | | 1KHz 10 KHz 100 KHz Frequency | | |
| | | 1 MHz | | 10 MHz | | |
| | | -55 -35 -15 +5 +25 +45 +65 +85+105 +125 Temperature °C | | |
| | | 0 20 40 60 80 100 Temperature °C | | |
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| | | Variation of Impedance with Cap Value Impedance vs. Frequency 0805 - C0G (NP0) 10 pF vs. 100 pF vs. 1000 pF | | |
| | | Variation of Impedance with Ceramic Formulation Impedance vs. Frequency 1000 pF - C0G (NP0) vs X7R 0805 | | |
| | | Variation of Impedance with Chip Size Impedance vs. Frequency 1000 pF - C0G (NP0) | | |
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| | | 10 | | |
| | 100,000| 10,000 1,000 | | | |
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| | | 10.00 | | |
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| | | a) ra 13 a) Q. E | | |
| | | 1.00 | | |
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| | | a) ra TD a) o. E | | |
| | | 1.0 | | |
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| | | 100 | | |
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| | | 0.10 | | |
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| | | 10.0 | | |
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| | | 0.1 | | |
| | | 1.0 | | |
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| | | 100 Frequency, MHz | | |
| | | 10 | | | 1000 | | |
| | | 0.01 | | |
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| | | 100 Frequency, MHz | | |
| | | 10 | | | 1000 | | |
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| | | 0.1 | | |
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| | | 10 100 Frequency, MHz | | 1000 | | |
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| | | /a\v>>:< | | |
| | | 4 | | |
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